The synthesis and characterization of a fused rubrene derivative with two embedded seven-membered rings are described. Owing to the incorporation of heptagons, fused rubrene was obtained as two isolable conformers in the C2h-symmetric saddle and D2-symmetric twisted structures. The isomers were both highly curved, as judged from the mean plane deviation of 1.10 Å (saddle) and 1.15 Å (twist). Kinetic studies using NMR spectroscopy and DFT calculations revealed that the saddle isomer was 11.0 kJ·mol-1 more stable at 25 °C than the twisted isomer. The isomers were kinetically stable under ambient conditions but interconverted at high temperatures with an isomerization barrier of 136.2 kJ·mol-1 at 25 °C from the twist to the saddle isomer. Both isomers displayed narrower optical band gaps than the nonfused rubrene. The two isomers exhibited optical properties that depended on their different molecular curvatures, which are thoroughly addressed in this work. The fused structure also enhanced the photostability compared with that of rubrene. Transient absorption studies suggested fast (τ = 7.2 ps) singlet fission of the twisted isomer in a thin film upon photoirradiation. Single-crystal OFET measurements demonstrated that the hole mobility of the crystalline saddle isomer is comparable to that of representative PAHs employed as organic semiconductors.
Hisada et al. (Sun,) studied this question.